A collision avoidance method and system for a trailer aircraft of an aircraft formation relative to an intruder aircraft. The collision avoidance system is embedded in a trailer aircraft of an aircraft formation and it is intended to avoid a collision relative to at least one aircraft external to the aircraft formation, called intruder aircraft, the aircraft formation including a lead aircraft and the at least one trailer aircraft, the collision avoidance system being configured to bring the trailer aircraft to a safety point dependent on a safety zone, prior to the implementation of an avoidance maneuver, the safety zone corresponding to a zone located to the rear of the lead aircraft and with no wake turbulence generated by the lead aircraft.
|
16. A trailer aircraft, of an aircraft formation, comprising a collision avoidance system for avoiding a collision relative to at least one intruder aircraft external to the aircraft formation, the aircraft formation comprising a lead aircraft and the trailer aircraft, the collision avoidance system comprising:
a first computation unit comprising one or more processors, and configured to determine at least one safety zone as a function of a position and a flight trajectory of the at least one intruder aircraft, the safety zone corresponding to a zone located to a rear of the lead aircraft;
a second computation unit comprising one or more processors, and configured to determine a safety point dependent on the safety zone; and
a control unit comprising one or more processors, and configured to maneuver the trailer aircraft to the safety point,
wherein the collision avoidance system comprises a data reception unit configured to receive information on risk of collision, from an anti-collision system of the trailer aircraft, with the intruder aircraft, the collision risk information being received as long as the risk of collision exists,
wherein the first computation unit is configured to determine the at least one safety zone upon the reception of collision risk information, the safety zone being without wake turbulence generated at least by the lead aircraft,
wherein the control unit is configured to maneuver the trailer aircraft to the safety point prior to an implementation of an avoidance maneuver to avoid the at least one intruder aircraft, and
wherein the safety point is positioned such that the trailer aircraft does not encounter wake turbulence generated by at least the lead aircraft during the avoidance maneuver.
10. A collision avoidance system for a trailer aircraft of an aircraft formation, the collision avoidance system being intended to avoid a collision relative to at least one intruder aircraft external to the aircraft formation aircraft, the aircraft formation comprising a lead aircraft and the at least one trailer aircraft, the collision avoidance system comprising:
a first computation unit comprising one or more processors, and configured to determine at least one safety zone as a function of a position and a flight trajectory of the at least one intruder aircraft, the safety zone corresponding to a zone located to a rear of the lead aircraft;
a second computation unit comprising one or more processors, and configured to determine a safety point dependent on the safety zone; and
a control unit comprising one or more processors, and configured to maneuver the trailer aircraft to the safety point,
wherein the collision avoidance system comprises a data reception unit configured to receive information on risk of collision, from an anti-collision system of the trailer aircraft, with the intruder aircraft, the collision risk information being received as long as the risk of collision exists,
wherein the first computation unit is configured to determine the at least one safety zone upon the reception of collision risk information, the safety zone being without wake turbulence generated at least by the lead aircraft,
wherein the control unit is configured to maneuver the trailer aircraft to the safety point prior to an implementation of an avoidance maneuver to avoid the at least one intruder aircraft, and
wherein the safety point is positioned such that the trailer aircraft does not encounter wake turbulence generated by at least the lead aircraft during the avoidance maneuver.
1. A collision avoidance method for at least one trailer aircraft of an aircraft formation, relative to at least one intruder aircraft external to the aircraft formation, the aircraft formation comprising a lead aircraft and the at least one trailer aircraft, the method comprising a series of steps, implemented on the trailer aircraft and comprising at least:
a first computation step implemented by a computation unit and comprising determining at least one safety zone as a function of a position and a flight trajectory of the at least one intruder aircraft, the safety zone corresponding to a zone located to a rear of the lead aircraft;
a second computation step implemented by a second computation unit and comprising determining a safety point dependent on the safety zone; and
a control step implemented by a control unit and comprising maneuvering the trailer aircraft to the safety point,
wherein the series of steps comprises a reception step implemented by a data reception unit and comprising receiving information from an anti-collision system of the trailer aircraft on risk of collision with the intruder aircraft, the collision risk information being received as long as the risk of collision exists,
wherein the first computation step comprises determining the at least one safety zone upon reception of collision risk information, the safety zone being with no wake turbulence generated at least by the lead aircraft,
wherein the control step comprises bringing maneuvering the trailer aircraft to the safety point prior to an implementation of an avoidance maneuver to avoid the at least one intruder aircraft, and
wherein the safety point is positioned such that the trailer aircraft does not encounter wake turbulence generated by at least the lead aircraft during the avoidance maneuver.
2. The method according to
3. The method according to
4. The method according to
5. The method according to
6. The method according to
7. The method according to
8. The method according to
9. The method according to
11. The system according to
12. The system according to
13. The system according to
14. The system according to
15. The system according to
17. The system according to
|
This patent application claims the benefit of and priority to French patent application number FR 16 53444, filed on Apr. 19, 2016, the entire disclosure of which is incorporated by reference herein.
The present disclosure relates to a collision avoidance method and system for an aircraft formation relative to an intruder aircraft.
In the context of the present disclosure:
In a preferred application, in particular in cruising flight, the aircraft fly one behind the other at the same flight level with the same heading and the same speed. Provision can also be made to apply to the trailer aircraft speed control commands which are such that they enable the trailer aircraft to have the same position, the same speed, and the same acceleration as the trailed aircraft had with given prior durations.
Such a formation flight offers advantages particularly in terms of fuel consumption. In effect, the formation is generally defined, particularly in terms of separation distance, such that a trailer aircraft is not disturbed by the wake turbulences created by the one or more aircraft, in particular the lead aircraft, preceeding it in the formation.
Wake turbulence or vortex should be understood to mean an aerodynamic turbulence (or vortex) which is formed downstream of an aircraft. The wake turbulence can be generated by the gases ejected by the engines. It can also be created at the end of a wing of an airplane, because of the pressure difference between lower and upper surface and the downward deflection of the flow which results therefrom. A wake turbulence can also appear on parts forming angles with the plane of the wings, such as, for example, control surfaces when they are lowered.
Now, during such a formation flight, an aircraft external to the formation may happen to converge towards at least one of the aircraft of the formation so as to create a risk of collision requiring the implementation of a separation maneuver.
Airliners are equipped with anti-collision systems of TCAS (“Traffic Collision Avoidance System”) type which make it possible to ensure the safety of the air traffic by preventing the risks of collision in flight. Thus, when two aircraft converge towards one another, their anti-collision systems compute an estimation of the collision time and emit an alert informing the crews of each aircraft of a possible future collision: such an alert is generally called “traffic advice” or “TA alert”. If necessary, the anti-collision systems also emit, for the attention of the crew, a vertical avoidance maneuver command in order to exit from the potential collision situation: such an avoidance maneuver command is generally called “resolution advice” or “RA alert”. The TA and RA alerts are embodied by voice messages and by the display of information in the cockpits.
Such an avoidance maneuver generally consists of applying a vertical separation between the aircraft concerned generally of 700 feet for airliners.
Now, such a maneuver generating a change of altitude of at least one of the aircraft of the formation may, depending on the relative positions of the aircraft of the formation and of the intruder aircraft, require a trailer aircraft to cross the wake turbulence (or vortex) created downstream of one of the aircraft (trailer aircraft or lead aircraft) preceding it.
Such a situation can, for example, occur in a formation with two aircraft, when the trailer aircraft is situated at a lower altitude than that of the lead aircraft and the intruder aircraft is arriving from below which then, to perform the avoidance maneuver, requires the trailer aircraft to climb and cross the wake turbulence, if the altitude difference necessary for the avoidance is greater than the altitude difference of the aircraft in the formation. This potential crossing of a wake turbulence prevents, for instability reasons, the keeping of the formation. In such a situation, the avoidance maneuver will break the formation, such that the aircraft can no longer benefit from the abovementioned advantages of the formation flight.
Such standard management of an avoidance maneuver for a formation flight upon a risk of collision is not therefore satisfactory.
An object of the present disclosure is to remedy this drawback. It relates to a collision avoidance method for at least one trailer aircraft of an aircraft formation, relative to at least one aircraft external to the aircraft formation, called intruder aircraft, the aircraft formation comprising a lead aircraft and the at least one trailer aircraft.
According to the disclosure herein, the collision avoidance method comprises a series of steps, implemented on the trailer aircraft and comprising at least:
Thus, by virtue of the present disclosure, and as specified hereinbelow, it is possible to bring the trailer aircraft into a hazard-free position (called safety position) relative to the wake turbulences of the lead aircraft, prior to the implementation of an avoidance maneuver. This safety position is such that the trailer aircraft does not have to cross the wake turbulence when it implements the avoidance maneuver. Thus, it is possible to maintain the formation upon the approach of an intruder aircraft. This makes it possible to remedy the abovementioned drawback and thus retain the corresponding advantages, notably in terms of cost, of the formation flight.
Advantageously:
Furthermore, advantageously, the first determination step consists in determining the safety zone as a function of the geometry of the intruder aircraft and of the position of the trailer aircraft relative to wake turbulences of the lead aircraft.
Moreover, advantageously, the second computation step consists in determining the safety point as a function of the safety zone and of a wake turbulence model.
In a particular embodiment, the series of steps comprises an alert step implemented by at least one alert unit and consisting in or comprising emitting at least one alert in the cockpit of the trailer aircraft, in case of reception of collision risk information, the alert being emitted as long as such collision risk information is received.
Furthermore, advantageously, the series of steps comprises a keeping step, implemented after the control step and consisting in or comprising keeping the trailer aircraft at the safety point relative to the lead aircraft, as long as an alert is emitted.
Moreover, advantageously, the collision avoidance method also comprises an avoidance step, implemented after the series of steps and consisting in or comprising implementing an avoidance maneuver making it possible to avoid the collision with the intruder aircraft while maintaining the formation flight.
The collision avoidance method also comprises a verification step implemented by a verification unit and consisting in or comprising checking whether the aircraft forming part of the aircraft formation are flying in formation.
The present disclosure relates also to a collision avoidance system for a trailer aircraft of an aircraft formation, the collision avoidance system being intended to avoid a collision relative to at least one aircraft external to the aircraft formation, called intruder aircraft, the aircraft formation comprising a lead aircraft and the at least one trailer aircraft.
According to the disclosure herein, the collision avoidance system comprises:
In a particular embodiment:
Furthermore, advantageously, the collision avoidance system also comprises:
The present disclosure further relates to an anti-collision system of TCAS type, which comprises such a collision avoidance system.
The present disclosure also relates to an aircraft, in particular a transport airplane, which is provided with a collision avoidance device and/or an anti-collision system such as those described hereinabove.
The attached figures will give a clear understanding of how the disclosure herein can be implemented. In these figures, identical references denote similar elements. More particularly:
The system 1 used to illustrate the disclosure herein and schematically represented in
The formation F comprises a lead aircraft AC1 and one or more trailer aircraft, namely a single trailer aircraft AC2 in the example of
The object of the system 1 which is mounted on the trailer aircraft AC2, as represented very schematically, is to avoid a collision with the intruder aircraft AC0, that is to say with an aircraft not forming part of the formation F and risking coming into collision with the trailer aircraft AC2 of the formation F as illustrated by the arrow B if no avoidance maneuver is implemented.
The collision avoidance system 1 comprises at least one formation flight management unit (not specifically represented). Such a unit is configured to manage the formation flight at least for the trailer aircraft. The formation flight is such that the trailer aircraft fly by trailing the aircraft that they follow directly (namely the lead aircraft or another trailer aircraft) so as to maintain a constant spacing E between them, as represented in
The collision avoidance system 1 comprises, as represented in
The units 2 and 3 form part of an embedded system 4, preferably an anti-collision system specified hereinbelow.
This system 4 further comprises, as represented in
These various elements are linked to the avoidance unit 2, as represented in
Preferably, the system 4 is therefore an anti-collision system of TCAS type. This anti-collision system makes it possible to ensure the safety of the air traffic by preventing the risks of collision in flight. Thus, when two aircraft converge towards one another, the anti-collision system computes an estimation of the collision time and emits (via the alert unit 11) an alert informing the crew of a possible future collision: such an alert is generally called “traffic advice” or “TA alert”. If apropriate, the anti-collision system 4 also emits, for the attention of the crew, a vertical avoidance maneuver command (for example via the display unit 12) in order to exit from the potential collision situation: such an avoidance maneuver command is generally called “resolution advice” or “RA alert”. The TA and RA alerts are embodied by voice messages (via the alert unit 11) and by the display of information (via the display unit 12) in the cockpit. In practice, the embedded anti-collision system 4 computes, generally, a time of collision in the horizontal plane (ratio between the horizontal distance between the two aircraft and their relative horizontal speed) and a time of collision in the vertical plane (ratio between the vertical distance between the two aircraft and their relative vertical speed). The duly computed collision times are compared to predetermined thresholds for the TA alerts and for the RA alerts (the predetermined thresholds also being a function of the altitude), and the alerts are triggered when the computed collision times are below the corresponding predetermined thresholds.
According to a variant, the computed collision times are also compared to probabilistic data.
Regarding the risk of collision the TCAS system emits information via the transponder 6 and its antenna 7, and receives information via the antenna 8.
Moreover, as represented in
The units 9 and 10 are standard transceiver units capable of emitting and receiving information via antennas, notably the antenna 8 (TCAS).
Furthermore, as represented in
The collision avoidance system 1 which is embedded on the trailer aircraft AC2 (
Thus, the system 1 is able to bring the trailer aircraft AC into a hazard-free position (called safety position Ps) relative to the wake turbulences C1, C2 of the lead aircraft AC1, prior to the implementation of an avoidance maneuver. This safety position Ps is such that the trailer aircraft AC2 does not have to cross wake turbulence C1, C2 when it implements the avoidance maneuver. Thus, the system 1 makes it possible to not have to break the formation upon the approach of an intruder aircraft AC0 as specified hereinbelow with reference to
Obviously, the system 1 implements these steps only if the trailer aircraft AC2 is indeed flying in formation.
Moreover, the keeping unit 3 comprises, in addition, a keeping module 16 (KEEP). This keeping module 16 is configured to implement a keeping step E5. This keeping step E5 consists in keeping the trailer aircraft AC2 at the safety point Ps relative to the lead aircraft AC1 as long as a collision risk alert is emitted, that is to say as long the risk of collision exists. When the alert is no longer emitted, the trailer aircraft AC2 is returned to its initial position Pi (
The collision avoidance system 1 also comprises an avoidance device configured to implement an avoidance maneuver intended to avoid the collision with the intruder aircraft AC0 while maintaining the formation flight. This avoidance device comprises a command application unit 17 (APPL). In the example of
The unit 17 generates commands intended to be used by manual or automatic piloting of the aircraft to implement the avoidance. The manual or automatic piloting can comprise a display unit, for example the display unit 12, to present commands to the pilots who are manually performing the piloting. It can also be an automatic piloting system which automatically implements the avoidance. In this case, the avoidance unit 2 also implements a step of computation of the avoidance maneuver specific to the lead aircraft in the case of a risk of conflict. This avoidance maneuver is computed by a module 18 of the TCAS system which is, for example, incorporated in the avoidance unit 2 as represented in
In a particular embodiment, the series of steps also comprises an alert step E6, as represented in
The series of steps also comprises a verification step E0 implemented by a verification unit 19 (VERIF) and consisting in or comprising verifying prior to the implementation of the step E1, that the aircraft forming part of the aircraft formation are flying in formation.
For this verification, the verification unit 19 takes into account, for example and in a nonlimiting manner, criteria of distance and of heading of the different aircraft of the formation.
Moreover, the computation unit 15 of the avoidance unit 2 determines the safety zone or zones Z1, Z2, Z3 as a function of the geometry of the intruder aircraft AC0 (to avoid spurious alerts during the flight of the trailer aircraft AC2 to the safety position) and of the position of the trailer aircraft AC2 relative to the wake turbulences of the lead aircraft AC1. Geometry should be understood to mean the position and the flight trajectory of the intruder aircraft AC0. The zones Z1, Z2, Z3 are the potential protection zones of the trailer aircraft AC2 relative to the wake turbulence C1 on the right of the lead aircraft AC1.
For this, the computation unit 15 implements a predetermined logic for determining a safety zone, presented for example in a decision table.
By way of illustration, the decision table can comprise the following safety zones Z1, Z2, Z3, relative to the wake turbulence C1 to the right of the lead aircraft AC1 (
A/ if the intruder aircraft is located below and behind the trailer aircraft (as in the example of
B/ if the intruder aircraft is located below and in front of the trailer aircraft, the zone to the right Z1 or the right upper zone Z2;
C/ if the intruder aircraft is located below and to the right of the trailer aircraft, the zone to the right Z1 or the right upper zone Z2;
D/ if the intruder aircraft is located below and to the left of the trailer aircraft, the zone Z1 to the right or the right upper zone Z2;
E/ if the intruder aircraft is located above and behind the trailer aircraft, the zone to the right Z1 or a right lower zone Z3 (that is to say a zone situated below the zone to the right Z1);
F/ if the intruder aircraft is located above and in front of the trailer aircraft, the zone to the right Z1 or the right lower zone Z3;
G/ if the intruder aircraft is located above and to the right of the trailer aircraft, the zone to the right Z1 or the right lower zone Z3;
H/ if the intruder aircraft is located above and to the left of the trailer aircraft, the zone to the right Z1 or the right lower zone Z3;
I/ if the intruder aircraft is located at the same flight level and behind the trailer aircraft, the zone to the right Z1 or the right upper zone Z2 or the right lower zone Z3;
J/ if the intruder aircraft is located at the same flight level and in front of the trailer aircraft, the zone to the right Z1 or the right upper zone Z2 or the right lower zone Z3;
K/ if the intruder aircraft is located at the same flight level and to the right of the trailer aircraft, the right upper zone Z2 or the right lower zone Z3;
L/ if the intruder aircraft is located at the same flight level and to the left of the trailer aircraft, the zone to the right Z1 or the right upper zone Z2 or the right lower zone Z3.
The same principle applies for the wake turbulence C2 to the left of the lead aircraft AC1.
Moreover, the computation unit 13 of the keeping unit 3 determines the safety point Ps as a function of the safety zone or zones thus determined and of a wake turbulence model.
By way of illustration, in the example of
Thus, the formation F is not broken.
The system 1, as described above, thus notably offers the following advantages:
The subject matter disclosed herein can be implemented in software in combination with hardware and/or firmware. For example, the subject matter described herein can be implemented in software executed by a processor or processing unit. In one exemplary implementation, the subject matter described herein can be implemented using a computer readable medium having stored thereon computer executable instructions that when executed by a processor of a computer control the computer to perform steps. Exemplary computer readable mediums suitable for implementing the subject matter described herein include non-transitory devices, such as disk memory devices, chip memory devices, programmable logic devices, and application specific integrated circuits. In addition, a computer readable medium that implements the subject matter described herein can be located on a single device or computing platform or can be distributed across multiple devices or computing platforms.
While at least one exemplary embodiment of the invention(s) is disclosed herein, it should be understood that modifications, substitutions and alternatives may be apparent to one of ordinary skill in the art and can be made without departing from the scope of this disclosure. This disclosure is intended to cover any adaptations or variations of the exemplary embodiment(s). In addition, in this disclosure, the terms “comprise” or “comprising” do not exclude other elements or steps, the terms “a”, “an” or “one” do not exclude a plural number, and the term “or” means either or both. Furthermore, characteristics or steps which have been described may also be used in combination with other characteristics or steps and in any order unless the disclosure or context suggests otherwise. This disclosure hereby incorporates by reference the complete disclosure of any patent or application from which it claims benefit or priority.
Robin, Jean-Luc, Caruhel, Camille, Deplanche, Sylvain
Patent | Priority | Assignee | Title |
10884434, | Aug 03 2017 | AIRBUS OPERATIONS S A S | Method and device for controlling the path of a following aircraft, with respect to a leading aircraft, in front of the following aircraft, in particular when there is a risk of collision, the leading and following aircraft flying in formation |
11467607, | Apr 04 2018 | AIRBUS OPERATIONS S A S | Method and device for controlling trajectory of a follower aircraft |
Patent | Priority | Assignee | Title |
9536435, | Jul 13 2015 | DOUBLE BLACK AVIATION TECHNOLOGY L L C | System and method for optimizing an aircraft trajectory |
20020080059, | |||
20020089432, | |||
20030222795, | |||
20050230563, | |||
20070103340, | |||
20170178516, | |||
EP2693417, | |||
EP2772817, | |||
EP2892000, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Apr 19 2017 | Airbus Operations (S.A.S.) | (assignment on the face of the patent) | / | |||
Jul 20 2017 | CARUHEL, CAMILLE | AIRBUS OPERATIONS S A S | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 043320 | /0714 | |
Jul 21 2017 | DEPLANCHE, SYLVAIN | AIRBUS OPERATIONS S A S | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 043320 | /0714 | |
Jul 26 2017 | ROBIN, JEAN-LUC | AIRBUS OPERATIONS S A S | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 043320 | /0714 |
Date | Maintenance Fee Events |
Jan 04 2023 | M1551: Payment of Maintenance Fee, 4th Year, Large Entity. |
Date | Maintenance Schedule |
Jul 09 2022 | 4 years fee payment window open |
Jan 09 2023 | 6 months grace period start (w surcharge) |
Jul 09 2023 | patent expiry (for year 4) |
Jul 09 2025 | 2 years to revive unintentionally abandoned end. (for year 4) |
Jul 09 2026 | 8 years fee payment window open |
Jan 09 2027 | 6 months grace period start (w surcharge) |
Jul 09 2027 | patent expiry (for year 8) |
Jul 09 2029 | 2 years to revive unintentionally abandoned end. (for year 8) |
Jul 09 2030 | 12 years fee payment window open |
Jan 09 2031 | 6 months grace period start (w surcharge) |
Jul 09 2031 | patent expiry (for year 12) |
Jul 09 2033 | 2 years to revive unintentionally abandoned end. (for year 12) |